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Updated: Mar 13, 2026

A Two-Step Strategy that Combines Epigenetic Modification and Biomechanical Cues to Generate Mammalian Pluripotent Cells
Published on: August 29, 2020
miR-203 facilitates timely cell fate transitions via epigenetic modulation during early embryogenesis
José González-Martínez1, Agustín Sánchez-Belmonte1,2,3, Estefanía Ayala1,4
1Cell Division and Cancer Group, Spanish National Cancer Research Centre (CNIO), Madrid, Spain.
Abstract:
Commonly expressed at developmental transitions, microRNAs operate as fine-tuners of gene expression to facilitate cell fate acquisition and lineage segregation. Nevertheless, how they might regulate the earliest developmental transitions in early mammalian embryogenesis remains obscure. Here, in a strictly in vivo approach based on genetically engineered mouse models and single-cell RNA sequencing, we identify microRNA-203 (miR-203) as a critical regulator of timely progression in preimplantation mouse embryos. Genetically engineered mouse models including a generated embryonic reporter (early embryo reporter) transgenic mouse carrying murine endogenous retrovirus-L (MERVL)-Tomato and SRY-box 2 (Sox2)-green fluorescent protein transgenes show that loss of miR-203 slows down early preimplantation development leading to the accumulation of embryos with high expression of totipotency-associated markers, including MERVL endogenous retroviral elements. A combination of single-cell transcriptional studies and epigenetic analyses identified histone acetylases including the central coactivator and histone acetyltransferase EP300 as critical miR-203 targets in the control of cell specification in early embryos. These data suggest that miR-203 carves the epigenetic rewiring required for early developmental transitions, allowing a timely and correctly paced development, at least partially by fine-tuning EP300 levels.
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